A connecting seat, a shockproof stand assembly and an electronic device
The design of the locking and magnetic components of the connector solves the problems of cumbersome installation and insufficient stability of microphones and shock mounts, enabling quick disassembly and stable connection, and improving the efficiency and safety of microphone use.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- SHENZHEN AIERJI COMM CO LTD
- Filing Date
- 2026-03-25
- Publication Date
- 2026-06-05
AI Technical Summary
Existing microphone and shock mount installation methods are cumbersome and lack stability, making it difficult to meet the safety requirements of professional scenarios.
The design employs a connector base, combining a locking assembly and a magnetic assembly. The locking assembly is detachably snapped to the side wall of the receiving slot and the fastener on the bottom side wall of the microphone, while the magnetic assembly provides initial positioning and fixation at the bottom, achieving dual fixation.
It enables quick disassembly and stable connection of the microphone and shock mount, ensuring the stability and reliability of the microphone in complex environments, while protecting the microphone shell from damage, thus improving installation efficiency and safety.
Smart Images

Figure CN122148865A_ABST
Abstract
Description
Technical Field
[0001] This invention belongs to the field of electronic device technology, and particularly relates to a connector, a shockproof bracket assembly, and an electronic device. Background Technology
[0002] With the booming development of industries such as live streaming, professional recording, and multimedia content creation, users have increasingly higher requirements for the performance of equipment such as microphones. In professional recording, live streaming, and live performances, microphones are usually mounted on a stand using shock mounts to isolate external vibration noise.
[0003] In existing technologies, the installation methods between shock mounts and microphones mainly fall into two categories: 1) Pure clamp-type locking: The microphone body is directly clamped from the side or top using elastic clamps or screws on the shock mount. This method has a strong locking force, but the installation and disassembly steps are cumbersome, requiring alignment and tightening of screws or forceful prying of clamps. It is inefficient in scenarios where microphones need to be frequently changed, and long-term use may wear down the paint on the microphone shell. 2) Pure magnetic fixation: Magnets are placed between the microphone and the shock mount, using magnetic force to fix them. This method is quick to install and offers an elegant experience, but it has inherent drawbacks: Relying solely on magnetic force, the microphone is prone to rotation or displacement when subjected to lateral contact or cable pulling, resulting in insufficient stability and a risk of falling off, making it difficult to meet the stringent safety requirements of professional scenarios. Summary of the Invention
[0004] The technical problem to be solved by the present invention is to provide a connector, a shock absorber assembly, and an electronic device, which aims to solve at least one technical problem in the background art.
[0005] To solve the above-mentioned technical problems, the present invention is implemented as follows: a connector for connecting electronic equipment and a shock absorber, wherein the electronic equipment is isolated from vibration by the shock absorber, and the connector comprises: A base is fixedly connected to the shock absorber, and the base has a receiving groove that can at least accommodate the bottom of the electronic device; A locking assembly is disposed on the side wall of the receiving groove, and the bottom side wall of the electronic device is provided with a fastener that cooperates with the locking assembly. The locking assembly can be detachably snapped together with the fastener. The locking assembly is used to lock the electronic device.
[0006] Preferably, the base includes an upper base and a lower base, the upper base and the lower base are fitted together, the upper base is fixedly connected to the shock absorber, and the receiving groove is disposed on the side of the upper base away from the lower base; The locking assembly is disposed on the lower base and extends at least partially into the receiving groove to be connected to the fastener.
[0007] Preferably, the locking assembly includes a claw and a reset member, wherein the claw includes a pivot portion and a locking portion and a pressing portion extending outward from both ends of the pivot portion; The pivot portion is rotatably connected to the lower base, the snap-fit portion extends into the receiving groove and snaps into the fastener, the pressing portion extends to the outside of the base, and the reset member is provided between the pressing portion and the base.
[0008] Preferably, the upper base has a fitting groove on the side away from the receiving groove, and the lower base is fitted into the fitting groove; The upper base is provided with a first through hole connecting the fitting groove and the receiving groove, and the snap-fit part extends into the receiving groove through the first through hole; The fitting groove is further provided with a second through hole, and the pressing part extends to the outside of the base through the second through hole. The reset member is disposed between the pressing part and the side wall of the fitting groove.
[0009] Preferably, the fastener is a wear-resistant block embedded in the bottom side wall of the electronic device, and the wear-resistant block has a slot that engages with the locking assembly.
[0010] Preferably, the end of the snap-fit portion is provided with a slope to prevent the electronic device from being placed into the receiving slot.
[0011] Preferably, the connector further includes: A magnetic suction assembly is disposed between the bottom of the electronic device and the bottom of the receiving slot for magnetically securing the electronic device. The magnetic attraction component includes a magnetic post located at the bottom of the electronic device and a magnetic cylinder located at the bottom of the receiving slot. The magnetic post is inserted into the magnetic cylinder to form a magnetic attraction.
[0012] Preferably, the bottom of the receiving groove is hollow, and the magnetic cylinder extends outward from the side wall of the hollow; the lower base extends into the magnetic cylinder to provide a support portion for supporting the magnetic cylinder.
[0013] In another aspect, the present invention provides a shock absorber assembly, including a shock absorber and a connecting seat connected to the shock absorber. The connecting seat is used to connect an electronic device, and the shock absorber is used to connect a device bracket to the electronic device. The connecting seat is the aforementioned connecting seat.
[0014] In another aspect, the present invention provides an electronic device, including a device bracket, an electronic device, and a shock-absorbing frame assembly connecting the device bracket and the electronic device, wherein the shock-absorbing frame assembly is the shock-absorbing frame assembly described above.
[0015] Compared with the prior art, the advantages of this invention are as follows: by setting a connector to connect the electronic device and the shock mount, the connector and the bottom of the electronic device are fitted with a receiving groove, and a locking component is set on the side wall of the receiving groove to make the electronic device detachable and snap-fit connected. The entire fixed connection method does not affect the quick replacement of the electronic device and the connector, which can meet the needs of scenarios where microphones and other devices are frequently replaced. Furthermore, by locking the microphone body on the side, the stability and reliability of the microphone installation can be effectively guaranteed. Attached Figure Description
[0016] Figure 1 This is an assembly perspective view of the connector and electronic device provided in Embodiment 1 of the present invention; Figure 2 This is an exploded perspective view of the connector and electronic device provided in Embodiment 1 of the present invention; Figure 3 A perspective view of the connector provided in Embodiment 1 of the invention; Figure 4 A perspective view of the connector provided in Embodiment 1 of the invention from another angle; Figure 5 An exploded perspective view of the connector provided in Embodiment 1 of the invention; Figure 6 A snap-fit assembly diagram of the connector and electronic device provided in Embodiment 1 of the invention; Figure 7 for Figure 6 Enlarged view of point I. Detailed Implementation
[0017] To make the objectives, technical solutions, and advantages of this invention clearer, the invention will be further described in detail below with reference to the accompanying drawings and embodiments. It should be understood that the specific embodiments described herein are merely illustrative and not intended to limit the invention.
[0018] To better illustrate the connector, shock absorber assembly, and electronic device in the embodiments of the present invention, the following will describe them in detail with reference to specific embodiments and accompanying drawings. However, it should be noted beforehand that the electronic device described in the embodiments of the present invention may be, but is not limited to, audio devices such as microphones and speakers, video devices such as cameras, probes, and projectors, or signal acquisition devices such as sensors and signal transceivers, etc. The specific type is not specifically limited; any device that needs to be isolated from vibration by a shock absorber is applicable. Furthermore, the following embodiments and accompanying drawings will primarily use a microphone as an example of an electronic device; the connection relationship and principle between other electronic devices and the connector are the same. Specifically, as follows: Example 1: like Figures 1-7As shown, a connector 100 is provided in Embodiment 1 of the present invention for connecting an electronic device and a shock mount 200. The electronic device is isolated from vibration by the shock mount 200. In this embodiment, the electronic device is specifically an example of a microphone 300. The microphone 300 is generally fixed to a bracket (not shown) by the shock mount 200 to isolate external vibration noise. For example, the microphone 300 is fixed to a desktop bracket by the shock mount 200. The desktop bracket is placed on a desktop or tabletop. In this way, the external vibration generated or transmitted by the desktop or tabletop or desktop bracket will be buffered and isolated by the shock mount 200 to prevent the vibration from being transmitted to the microphone 300, so as to avoid interference with the microphone 300's sound pickup.
[0019] In this embodiment, the connector 100 is mainly used to connect the shock mount 200 and the microphone 300. Specifically, the connector 100 includes a base 10 and a locking assembly 20 and a magnetic assembly 30 disposed on the base 10. The base 10 is fixedly connected to the shock mount 200. The base 10 has a receiving groove 10a, which can accommodate at least the bottom of the electronic device. The locking assembly 20 is disposed on the side wall of the receiving groove 10a. The bottom side wall of the microphone 300 is provided with a fastener 310 that cooperates with the locking assembly 20. The locking assembly 20 can be detachably snapped together with the fastener 310. In addition, the magnetic assembly 30 is disposed between the bottom of the microphone 300 and the bottom of the receiving groove 10a for magnetically fixing the microphone 300. Specifically, the shape and size of the receiving groove 10a are adapted to the bottom shape and size of the microphone 300, and are circular, square or irregularly shaped to match the bottom contour of the microphone 300. The depth of the receiving groove 10a is set to be no less than the bottom height of the microphone 300, so as to at least stably accommodate the bottom of the electronic device (i.e., the microphone 300 in this embodiment), realize the initial positioning of the microphone 300, avoid the microphone 300 from shifting laterally, and provide a basis for subsequent locking and magnetic fixation.
[0020] like Figure 2As shown, in practical implementation, multiple locking components 20 can be arranged on the side wall of the receiving groove 10a. For example, one locking component 20 can be arranged on each of the opposite side walls of the receiving groove 10a, thereby making the locking and fixing of the microphone 300 and the connector 100 more stable and reliable. Specifically, the locking components 20 are symmetrically arranged on the opposite side walls of the receiving groove 10a, with the specific installation position corresponding to the middle area of the side wall of the receiving groove 10a, and the center line connecting the two sets of locking components 20 coincides with the central axis of the receiving groove 10a, thereby ensuring that the clamping force on the bottom of the microphone 300 is symmetrical and uniform. The number of them can be flexibly set to one or more sets according to the size, weight and fastening requirements of the microphone 300 and the actual use scenario. For example, for a small and lightweight microphone, one set of locking components can be set to achieve basic fixation; for a larger microphone or a microphone that requires higher connection reliability, three or more sets of evenly distributed locking components can be set. In this embodiment, two sets of symmetrically distributed locking components 20 are preferably provided. This number can take into account both connection stability and structural simplicity, and can also effectively ensure that the bottom of the microphone 300 is evenly stressed, avoiding the microphone 300 from being misaligned due to excessive stress on one side. This significantly improves the stability and reliability of the buckle connection and prevents the microphone 300 from loosening under vibration.
[0021] Similarly, multiple magnetic attachment components 30 can be arranged, specifically multiple magnetic fixing points can be set, thereby making the magnetic fixation between the microphone 300 and the connector 100 more stable and reliable. Specifically, the magnetic attachment component 30 can have four magnetic parts, divided into a first magnetic attachment member and a second magnetic attachment component. The first and second magnetic attachment members use magnetic force to position the microphone body on the connector. Specifically, the first magnetic attachment member is located at the bottom of the microphone body (such as the bottom of the housing), and the second magnetic attachment member is located on the bottom frame. Specifically, at least one first magnetic attachment member is set at the bottom of the microphone body as a positioning component, and at least one second magnetic attachment member is correspondingly set on the connector 100 as an attachment positioning component. When the user needs to install the microphone, he only needs to bring the bottom of the microphone close to the connector 100, and a magnetic attraction will be generated between the first and second magnetic attachment members. This magnetic connection allows the microphone to quickly and automatically move to the correct mounting position and initially attach, achieving rapid guidance and pre-fixation during installation. This avoids the hassle of repeatedly aligning holes or clips required in traditional installation methods, significantly improving the convenience and accuracy of positioning. Under the influence of magnetism, the microphone quickly establishes a preliminary positioning relationship with the shock mount, laying the foundation for the locking assembly and ensuring a smooth and efficient installation process. Simultaneously, the magnetic positioning method prevents physical compression or friction on the microphone shell, effectively protecting the paint finish and preventing potential wear from long-term use. The stable placement of the microphone on the shock mount also improves its sound pickup performance.
[0022] It should be noted that one of the core objectives of this invention is to achieve quick disassembly and detachment of the microphone and connector. Therefore, in some other optional embodiments, the magnetic component 30 may not be provided, and the microphone body may be locked by the circumferentially arranged locking component 20, thus achieving quick assembly and disassembly of the microphone. Of course, in some preferred embodiments, the magnetic component 30 is added to the bottom, which can increase the magnetic force in the vertical direction and further improve the connection stability between the microphone and the connector, providing a basis for the use of the microphone in relatively harsh environments. By arranging the detachable locking component 20 in the circumferential direction and providing the vertically adsorbed magnetic component 30 at the bottom, the microphone 300 can be effectively and reliably fixed under the double fixing effect. In addition, the magnetic attraction can be separated by loosening the circumferential locking component 20 and applying the vertical counter-pulling force, thereby achieving efficient replacement of the microphone 300.
[0023] Specifically, such as Figure 4 and Figure 5As shown, in this embodiment, the base 10 is not a one-piece structure, but rather a split design. The base 10 specifically includes an upper base 11 and a lower base 12, which are fitted together vertically. A receiving groove 10a is located on the side of the upper base 11 away from the lower base 12. Specifically, the upper base 11 has a fitting groove 10b on the side away from the receiving groove 10a, and the lower base 12 is fitted into the fitting groove 10b and fixed to the upper base 11 with bolts. The upper base 11 is fixedly connected to the shock absorber 200 with bolts. Specifically, the shock absorber 200 has multiple connecting posts 210, and the upper base 11 has a connecting hole 13 at a corresponding position on each connecting post 210. The connecting post 210 is fixed to the corresponding connecting hole 13 with bolts. A locking assembly 20 is disposed on the lower base 12 and extends at least partially into the receiving groove 10a to be snapped together with the fastener 310. The bottom of the receiving groove 10a can be further equipped with a buffer pad 40 to isolate vibration and provide cushioning protection for the electronic equipment. This design of a detachable and interlocking upper base 11 and lower base 12 offers multiple technical advantages compared to a traditional one-piece molded base: Firstly, the detachable structure facilitates the manufacturing of each component. The upper base 11 requires the molding of precision structures such as the receiving groove 10a and the mounting base for the locking assembly, while the lower base 12 primarily provides support and connection. Detachment processing reduces the difficulty of machining individual components, improves dimensional accuracy and processing efficiency, and reduces machining defects such as shrinkage cavities and deformation that may occur during one-piece molding. Secondly, it facilitates subsequent maintenance and replacement. When the receiving groove 10a wears or deforms due to long-term use, or when the locking assembly or magnetic assembly needs repair or replacement, only the upper base 11 needs to be disassembled for operation, without removing the entire base from the shock absorber 200. This significantly improves maintenance convenience and reduces maintenance costs. Thirdly, it provides a foundation for the subsequent arrangement of the locking assembly 20. The design of the fitting groove and the positioning step, combined with the bolt fastening, enables the upper base 11 and the lower base 12 to form a solid whole, ensuring the stability and load-bearing capacity of the overall structure of the base 10. This provides a stable installation foundation for the microphone 300, the locking assembly 20, and the magnetic assembly 30, preventing the positioning accuracy and sound reception effect of the microphone 300 from being affected by the loosening of the base. Fourthly, the split design allows for flexible adjustment of the structural dimensions of the upper base 11 or the lower base 12 according to actual needs. For example, different specifications of the upper base 11 can be replaced to adapt to microphones of different sizes, and different thicknesses of the lower base 12 can be replaced to adjust the installation height of the microphone 300, improving the versatility and adaptability of the base 10 and expanding the applicability of the entire device.
[0024] In this embodiment, the locking assembly 20 includes a claw 21 and a reset member 22. The claw 21 specifically includes a pivot portion 211 and a locking portion 212 and a pressing portion 213 extending outward from both ends of the pivot portion 211. The pivot portion 211 is rotatably connected to the lower base 12. The locking portion 212 extends into the receiving groove 10a and is locked in place with the fastener 310. The pressing portion 213 extends to the outside of the base 10, and a reset member 22 is provided between the pressing portion 213 and the base 10. Specifically, as shown... Figure 5 As shown, the upper base 11 is provided with a first through hole 111 connecting the fitting groove 10b and the receiving groove 10a. The snap-fit part 212 extends into the receiving groove 10a through the first through hole 111. In addition, the fitting groove 10b is also provided with a second through hole 112, which connects the outside of the base 10 and the fitting groove 10b. The pressing part 213 extends to the outside of the base 10 through the second through hole 112, so that it can be pressed directly from the outside. When the pressing part 213 is pressed, it will drive the pivot part 211 to rotate, thereby causing the snap-fit part 212 to rotate away from the fastener 310, thereby disengaging from the snap-fit connection. The reset member 22 is specifically provided between the pressing part 213 and the side wall of the fitting groove 10b. After the pressing part 213 is released, the reset member 22 resets, so that the pressing part 213 springs back to its original position. The reset member 22 can be a spring or a spring sheet, etc.
[0025] In some preferred embodiments of this example, the fastener 310 is a wear-resistant block embedded in the bottom sidewall of the electronic device. The surface of the wear-resistant block slightly protrudes from or is flush with the microphone 300 housing. The wear-resistant block has a slot 311 that engages with the latching part of the locking assembly 20. That is, the latching part engages with the slot 311 to achieve a latching action. When the pressing part 213 is pressed, it forces the latching part to disengage from the slot 311, thus completing the latching separation. In addition, preferably, the end of the latching part 212 is provided with a slope 21a for avoiding the placement of electronic devices into the receiving slot 10a. That is, when the microphone 300 is placed into the receiving slot 10a, under the action of the slope 21a, the entire latch 21 will turn outward to avoid the microphone 300. When the microphone 300 is successfully placed into the receiving slot 10a, the latching part 212 of the latch 21 just fits into the slot 311 of the wear-resistant block, realizing automatic latching and locking after the microphone 300 is placed in, and automatic magnetic attraction at the bottom.
[0026] Furthermore, by way of example and not limitation, in some preferred embodiments of this example, the magnetic assembly 30 specifically includes a magnetic post 31 disposed at the bottom of the microphone 300 and a magnetic cylinder 32 disposed at the bottom of the receiving groove 10a, wherein the magnetic post 31 is inserted into the magnetic cylinder 32 and forms a magnetic attraction. Specifically, as Figures 3-5As shown, the bottom of the receiving groove 10a is provided with a hollow space 10c. The hollow space 10c can effectively reduce the material used in the connector 100 and also increase the heat dissipation effect at the bottom of the microphone 300. The magnetic cylinder 32 extends outward from the side wall of the hollow space 10c. When the microphone 300 is placed in the receiving groove 10a, the magnetic post 31 inserts into the magnetic cylinder 32 and automatically forms a magnetic attraction. Preferably, the lower base 12 extends into the magnetic cylinder 32 to provide a support part 121 for supporting the magnetic cylinder 32, thereby enhancing the support of the magnetic cylinder 32 for the electronic device. In specific implementations, the magnetic column 31 can be made of a magnetic material to make it magnetic, and the magnetic cylinder 32 can be made of a magnetically attractable metal material; or the magnetic cylinder 32 can be made of a magnetic material to make it magnetic, and the magnetic column 31 can be made of a magnetically attractable metal material; or the magnetic column 31 can be made of a magnetic material to make it magnetic, while the upper base 11 is made of a non-metallic material and the lower base 12 is made of a metallic material. Since the lower base 12 extends a support portion 121 towards the magnetic cylinder 32, the magnetic column 31 can still achieve magnetic attraction with the lower support portion 121 even through the magnetic cylinder 32. The above are only a few preferred magnetic attraction implementation methods. In specific implementations, any possible combination can be used, without specific limitations.
[0027] Example 2: Embodiment 2 of the present invention also proposes a shockproof frame assembly, including a shockproof frame and a connecting seat connected to the shockproof frame. The connecting seat is used to connect electronic equipment, and the shockproof frame is used to connect the electronic equipment as a device bracket. The connecting seat is the connecting seat 100 described in any of the above embodiments.
[0028] As an example, and not a limitation, taking a microphone as an example, a microphone is usually fixed on a microphone stand to place the microphone on a table. In order to isolate external vibration noise, a shock mount assembly is also provided between the microphone and the microphone stand. In this embodiment, the shock mount assembly includes a connector for connecting the microphone and a shock mount for connecting the microphone stand. That is, the microphone in this embodiment uses the connector described in any of the above embodiments. This method has dual fixation of snap-fit and magnetic attraction, which is stable and reliable, and this method does not affect the quick replacement of the microphone.
[0029] Example 3: Embodiment 3 of the present invention also proposes an electronic device, including a device bracket, an electronic device, and a shockproof frame assembly connecting the device bracket and the electronic device, wherein the shockproof frame assembly is the shockproof frame assembly described in the above embodiments.
[0030] It should be noted that the electronic devices described in this embodiment may be, but are not limited to, audio devices such as microphones and speakers, video devices such as cameras, probes, and projectors, or signal acquisition devices such as sensors and signal transceivers. The specific type is not specifically limited, and any device that needs to be isolated from vibration by a shock mount is applicable.
[0031] It should be noted that the device provided in Embodiment 3 of the present invention has a similar implementation principle and technical effects as Embodiments 1 and 2. For the sake of brevity, any parts not mentioned in this embodiment can be referred to the corresponding contents in Embodiments 1 and 2.
[0032] In addition, it should be noted that the above embodiments and features can be combined with each other as needed, provided there is no conflict, and the resulting new technical solutions still fall within the scope of protection claimed by this invention.
[0033] In summary, the embodiments of the present invention achieve at least the following technical effects: 1. Extremely quick installation: Utilizing magnetic properties, the microphone can be automatically attracted and initially aligned when it is close to the base, achieving "one-second placement" and greatly improving efficiency. It is especially suitable for occasions where microphones need to be frequently replaced.
[0034] 2. Double-layer fixation for safety and reliability: Magnetic attraction provides the first layer of adsorption and fixation, while lateral mechanical locking provides the second layer of rigid clamping. The combination of these two features ensures the microphone will not loosen even under complex vibrations, movement, or tilting conditions, ensuring extremely high safety.
[0035] 3. Effective protection of the microphone body: The claws directly contact a special wear-resistant block embedded in the device housing, rather than the expensive microphone housing, completely avoiding scratches, wear or indentations on the microphone surface during the locking process, maintaining the microphone's integrity and aesthetics.
[0036] 3. Precise and repeatable positioning: The magnetic design allows the microphone to quickly attach to the same preset position each time. Combined with the locking mechanism on both sides, it ensures that the microphone's pointing angle is consistent, making it easy for audio engineers to quickly set and reproduce recording conditions.
[0037] The above description is only a preferred embodiment of the present invention and is not intended to limit the present invention. Any modifications, equivalent substitutions, and improvements made within the spirit and principles of the present invention should be included within the protection scope of the present invention.
Claims
1. A connector, characterized in that, For connecting electronic equipment and a shock absorber, wherein the electronic equipment is isolated from vibration by the shock absorber, the connecting base includes: A base is fixedly connected to the shock absorber, and the base has a receiving groove that can at least accommodate the bottom of the electronic device; A locking assembly is disposed on the side wall of the receiving groove, and the bottom side wall of the electronic device is provided with a fastener that cooperates with the locking assembly. The locking assembly can be detachably snapped together with the fastener. The locking assembly is used to lock the electronic device.
2. The connector according to claim 1, characterized in that, The base includes an upper base and a lower base, which are fitted together. The upper base is fixedly connected to the shock absorber, and the receiving groove is located on the side of the upper base away from the lower base. The locking assembly is disposed on the lower base and extends at least partially into the receiving groove to be connected to the fastener.
3. The connector according to claim 2, characterized in that, The locking assembly includes a claw and a reset member. The claw includes a pivot portion and a locking portion and a pressing portion extending outward from both ends of the pivot portion. The pivot portion is rotatably connected to the lower base, the snap-fit portion extends into the receiving groove and snaps into the fastener, the pressing portion extends to the outside of the base, and the reset member is provided between the pressing portion and the base.
4. The connector according to claim 3, characterized in that, The upper base has a fitting groove on the side away from the receiving groove, and the lower base is fitted into the fitting groove; The upper base is provided with a first through hole connecting the fitting groove and the receiving groove, and the snap-fit part extends into the receiving groove through the first through hole; The fitting groove is further provided with a second through hole, and the pressing part extends to the outside of the base through the second through hole. The reset member is disposed between the pressing part and the side wall of the fitting groove.
5. The connector according to claim 1 or 3, characterized in that, The fastener is a wear-resistant block embedded in the bottom side wall of the electronic device, and the wear-resistant block has a slot that engages with the locking assembly.
6. The connector according to claim 3, characterized in that, The end of the snap-fit portion is provided with a slope to prevent the electronic device from being placed into the receiving slot.
7. The connector according to claim 3, characterized in that, The connector also includes: A magnetic suction assembly is disposed between the bottom of the electronic device and the bottom of the receiving slot for magnetically securing the electronic device. The magnetic attraction component includes a magnetic post located at the bottom of the electronic device and a magnetic cylinder located at the bottom of the receiving slot. The magnetic post is inserted into the magnetic cylinder to form a magnetic attraction.
8. The connector according to claim 7, characterized in that, The bottom of the receiving groove is hollow, and the magnetic cylinder extends outward from the side wall of the hollow; the lower base extends into the magnetic cylinder to provide a support for the magnetic cylinder.
9. A shock-absorbing frame assembly, characterized in that, The device includes a shock absorber and a connecting seat connected to the shock absorber. The connecting seat is used to connect an electronic device, and the shock absorber is used to connect the electronic device as a device bracket. The connecting seat is the connecting seat according to any one of claims 1-8.
10. An electronic device, characterized in that, It includes a device bracket, electronic equipment, and a shock-absorbing frame assembly connecting the device bracket and the electronic equipment, wherein the shock-absorbing frame assembly is the shock-absorbing frame assembly as described in claim 9.